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      Modified MXene/Holey Graphene Films for Advanced Supercapacitor Electrodes with Superior Energy Storage

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          Abstract

          MXene films are attractive for advanced supercapacitor electrodes requiring high volumetric energy density due to their high redox capacitance combined with extremely high packing density. However, the self‐restacking of MXene flakes unavoidably decreases the volumetric performance, mass loading, and rate capability. Herein, a simple strategy is developed to prepare a flexible and free‐standing modified MXene/holey graphene film by filtration of the alkalized MXene and holey graphene oxide dispersions, followed by a mild annealing treatment. After terminal groups (—F/—OH) are removed, the increased proportion of Ti atoms enables more pseudocapacitive reaction. Meanwhile, the embedded holey graphene effectively prevents the self‐restacking of MXene and forms a high nanopore connectivity network, which is able to immensely accelerate the ion transport and shorten transport pathways for both ion and electron. When applied as electrode materials for supercapacitors, it can deliver an ultrahigh volumetric capacitance (1445 F cm −3) at 2 mV s −1, excellent rate capability, and high mass loading. In addition, the assembled symmetric supercapacitor demonstrates a fantastic volumetric energy density (38.6 Wh L −1), which is the highest value reported for MXene‐based electrodes in aqueous electrolytes. This work opens a new avenue for the further exploration of MXene materials in energy storage devices.

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          Ultra-high-rate pseudocapacitive energy storage in two-dimensional transition metal carbides

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            MXene Ti3C2: An Effective 2D Light-to-Heat Conversion Material

            MXene, a new series of 2D material, has been steadily advancing its applications to a variety of fields, such as catalysis, supercapacitor, molecular separation, electromagnetic wave interference shielding. This work reports a carefully designed aqueous droplet light heating system along with a thorough mathematical procedure, which combined leads to a precise determination of internal light-to-heat conversion efficiency of a variety of nanomaterials. The internal light-to-heat conversion efficiency of MXene, more specifically Ti3C2, was measured to be 100%, indicating a perfect energy conversion. Furthermore, a self-floating MXene thin membrane was prepared by simple vacuum filtration and the membrane, in the presence of a rationally chosen heat barrier, produced a light-to-water-evaporation efficiency of 84% under one sun irradiation, which is among the state of art energy efficiency for similar photothermal evaporation system. The outstanding internal light-to-heat conversion efficiency and great light-to-water evaporation efficiency reported in this work suggest that MXene is a very promising light-to-heat conversion material and thus deserves more research attention toward practical applications.
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              MXene molecular sieving membranes for highly efficient gas separation

              Molecular sieving membranes with sufficient and uniform nanochannels that break the permeability-selectivity trade-off are desirable for energy-efficient gas separation, and the arising two-dimensional (2D) materials provide new routes for membrane development. However, for 2D lamellar membranes, disordered interlayer nanochannels for mass transport are usually formed between randomly stacked neighboring nanosheets, which is obstructive for highly efficient separation. Therefore, manufacturing lamellar membranes with highly ordered nanochannel structures for fast and precise molecular sieving is still challenging. Here, we report on lamellar stacked MXene membranes with aligned and regular subnanometer channels, taking advantage of the abundant surface-terminating groups on the MXene nanosheets, which exhibit excellent gas separation performance with H2 permeability >2200 Barrer and H2/CO2 selectivity >160, superior to the state-of-the-art membranes. The results of molecular dynamics simulations quantitatively support the experiments, confirming the subnanometer interlayer spacing between the neighboring MXene nanosheets as molecular sieving channels for gas separation.
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                Author and article information

                Contributors
                liuyy@hit.edu.cn
                Journal
                Adv Sci (Weinh)
                Adv Sci (Weinh)
                10.1002/(ISSN)2198-3844
                ADVS
                Advanced Science
                John Wiley and Sons Inc. (Hoboken )
                2198-3844
                17 August 2018
                October 2018
                : 5
                : 10 ( doiID: 10.1002/advs.v5.10 )
                : 1800750
                Affiliations
                [ 1 ] MIIT Key Laboratory of Critical Materials Technology for New Energy Conversion and Storage School of Chemistry and Chemical Engineering Harbin Institute of Technology Harbin 150001 P. R. China
                [ 2 ] National Key Laboratory of Science and Technology on Advanced Composites in Special Environments Harbin Institute of Technology Harbin 150080 P. R. China
                [ 3 ] Center for Rubber Composite Materials and Structures Harbin Institute of Technology at Weihai Weihai 264209 P. R. China
                [ 4 ] Natural Science Research Center Academy of Fundamental and Interdisciplinary Sciences Harbin Institute of Technology Harbin 150080 P. R. China
                Author notes
                [*] [* ]E‐mail: liuyy@ 123456hit.edu.cn
                Author information
                http://orcid.org/0000-0003-3030-8551
                Article
                ADVS780
                10.1002/advs.201800750
                6193160
                30356956
                39c1e81e-ce79-4eed-8cab-b9d3367bae98
                © 2018 The Authors. Published by WILEY‐VCH Verlag GmbH & Co. KGaA, Weinheim

                This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.

                History
                : 15 May 2018
                : 15 July 2018
                Page count
                Figures: 7, Tables: 0, Pages: 11, Words: 7508
                Funding
                Funded by: National Natural Science Foundation of China
                Award ID: 51790502
                Award ID: 51573035
                Funded by: Joint Construction Project of HIT‐Weihai
                Award ID: 2017DXGJ01
                Categories
                Full Paper
                Full Papers
                Custom metadata
                2.0
                advs780
                October 2018
                Converter:WILEY_ML3GV2_TO_NLMPMC version:version=5.5.0.1 mode:remove_FC converted:18.10.2018

                holey graphene,modified mxene,rate capability,supercapacitors,volumetric performance

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